DocumentCode :
1832018
Title :
Valve dynamics in multi-cylinder positive displacement pump model
Author :
Josifovic, Aleksandar ; Corney, Jonathan ; Davies, Bruce
Author_Institution :
Design, Manuf. & Eng. Manage., Univ. of Strathclyde, Glasgow, UK
fYear :
2015
fDate :
7-11 July 2015
Firstpage :
35
Lastpage :
41
Abstract :
Pumps are critical components of many industrial processes. Although they vary in size, depending on the application, their operating principles and performance parameters are similar across generic families. Large industrial positive displacement (P.D.) pumps, primarily used in mining, oil and gas industries, deliver significant amounts of flow coupled with very high pressures. However, increasing energy costs and sustainability concerns demand systems re-design to improve their efficiency. Most established forms of PD pumps have duty cycles fixed by the movement of spring loaded valves. One approach to increase their energy efficiency could be to dynamically vary the movement of these valves. To test this hypothesis and quantify any potential benefits a computational model is required. This paper introduces modelling technique used to analytically describe a multi-cylinder positive displacement pump. A hybrid modelling approach is described which incorporates analytical relationships, the results of CFD simulation and experimental values. Results show how different valve actuation responses affect the overall flow rate of the pump. The results presented in the paper clearly indicate future development steps for improved control of positive displacement pumps.
Keywords :
computational fluid dynamics; design engineering; energy conservation; flow simulation; gas industry; mining industry; petroleum industry; pumps; shapes (structures); sustainable development; valves; CFD simulation; demand system redesign; energy cost; energy efficiency; gas industry; industrial process; large industrial PD pump; large industrial positive displacement pump; mining industry; multicylinder positive displacement pump model; oil industry; sustainability concern; valve dynamics; Analytical models; Computational fluid dynamics; Computational modeling; Discharges (electric); Mathematical model; Numerical models; Valves;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Advanced Intelligent Mechatronics (AIM), 2015 IEEE International Conference on
Conference_Location :
Busan
Type :
conf
DOI :
10.1109/AIM.2015.7222505
Filename :
7222505
Link To Document :
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